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Why does the C++ allow specialization of a type for both true and false parameters?

template<bool> struct omg { /* can't access anything declared here */ };
template<> struct omg<true> { };
template<> struct omg<false> { };

Is there any situation in which this is meaningful/useful?

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Perhaps because forbidding it would require extra work and a more complicated language definition. –  Keith Thompson Dec 26 '13 at 7:18
    
@KeithThompson: I'm tempted to say so too, but I thought the same thing of this question and yet the answer was a convincing no. –  Mehrdad Dec 26 '13 at 7:20
    
Nothing requires you to define the primary template, you can do template<bool> struct omg; and be done with it. –  jthill Dec 26 '13 at 7:25

1 Answer 1

up vote 0 down vote accepted

I think, there is no such situation. But standard have no any restricts to template non-type parameters, that are suitable to conditions. By the way, it such restriction were, it should be for all types. It will not be correct to do something like

enum A { first, second };

template<A> struct omg {};
template<> struct omg<first> {};
template<> struct omg<second> {};

and this is too complicated, IMHO.

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